39 research outputs found
Mapping of ion beam induced current changes in FinFETs
We report on progress in ion placement into silicon devices with scanning
probe alignment. The device is imaged with a scanning force microscope (SFM)
and an aligned argon beam (20 keV, 36 keV) is scanned over the transistor
surface. Holes in the lever of the SFM tip collimate the argon beam to sizes of
1.6 um and 100 nm in diameter. Ion impacts upset the channel current due to
formation of positive charges in the oxide areas. The induced changes in the
source-drain current are recorded in dependence of the ion beam position in
respect to the FinFET. Maps of local areas responding to the ion beam are
obtained.Comment: IBMM 2008 conference proceedin
Critical issues in the formation of quantum computer test structures by ion implantation
The formation of quantum computer test structures in silicon by ion
implantation enables the characterization of spin readout mechanisms with
ensembles of dopant atoms and the development of single atom devices. We
briefly review recent results in the characterization of spin dependent
transport and single ion doping and then discuss the diffusion and segregation
behaviour of phosphorus, antimony and bismuth ions from low fluence, low energy
implantations as characterized through depth profiling by secondary ion mass
spectrometry (SIMS). Both phosphorus and bismuth are found to segregate to the
SiO2/Si interface during activation anneals, while antimony diffusion is found
to be minimal. An effect of the ion charge state on the range of antimony ions,
121Sb25+, in SiO2/Si is also discussed
Dynamic nuclear polarization and spin-diffusion in non-conducting solids
There has been much renewed interest in dynamic nuclear polarization (DNP),
particularly in the context of solid state biomolecular NMR and more recently
dissolution DNP techniques for liquids. This paper reviews the role of spin
diffusion in polarizing nuclear spins and discusses the role of the spin
diffusion barrier, before going on to discuss some recent results.Comment: submitted to Applied Magnetic Resonance. The article should appear in
a special issue that is being published in connection with the DNP Symposium
help in Nottingham in August 200
Increasing comparability among coral bleaching experiments
Coral bleaching is the single largest global threat to coral reefs worldwide. Integrating the diverse body of work on coral bleaching is critical to understanding and combating this global problem. Yet investigating the drivers, patterns, and processes of coral bleaching poses a major challenge. A recent review of published experiments revealed a wide range of experimental variables used across studies. Such a wide range of approaches enhances discovery, but without full transparency in the experimental and analytical methods used, can also make comparisons among studies challenging. To increase comparability but not stifle innovation, we propose a common framework for coral bleaching experiments that includes consideration of coral provenance, experimental conditions, and husbandry. For example, reporting the number of genets used, collection site conditions, the experimental temperature offset(s) from the maximum monthly mean (MMM) of the collection site, experimental light conditions, flow, and the feeding regime will greatly facilitate comparability across studies. Similarly, quantifying common response variables of endosymbiont (Symbiodiniaceae) and holobiont phenotypes (i.e., color, chlorophyll, endosymbiont cell density, mortality, and skeletal growth) could further facilitate cross-study comparisons. While no single bleaching experiment can provide the data necessary to determine global coral responses of all corals to current and future ocean warming, linking studies through a common framework as outlined here, would help increase comparability among experiments, facilitate synthetic insights into the causes and underlying mechanisms of coral bleaching, and reveal unique bleaching responses among genets, species, and regions. Such a collaborative framework that fosters transparency in methods used would strengthen comparisons among studies that can help inform coral reef management and facilitate conservation strategies to mitigate coral bleaching worldwide
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Excited-state spectroscopy using single-spin manipulation in diamond
We use single-spin resonant spectroscopy to study the spin structure in the orbital excited-state of a diamond nitrogen-vacancy center at room temperature. We find that the excited state spin levels have a zero-field splitting that is approximately half of the value of the ground state levels, a g-factor similar to the ground state value, and a hyperfine splitting ~;20x larger than in the ground state. In addition, the width of the resonances reflects the electronic lifetime in the excited state. We also show that the spin-splitting can significantly differ between NV centers, likely due to the effects of local strain, which provides a pathway to control over the spin Hamiltonian and may be useful for quantum information processing